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US5985110A - Apparatus for electrochemical treatment of water and/or water solutions - Google Patents

Apparatus for electrochemical treatment of water and/or water solutions
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US5985110A
US5985110AUS09/076,656US7665698AUS5985110AUS 5985110 AUS5985110 AUS 5985110AUS 7665698 AUS7665698 AUS 7665698AUS 5985110 AUS5985110 AUS 5985110A
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catholyte
chamber
inlet
set forth
anode chamber
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Vitold M. Bakhir
Jury G. Zadorozhny
Taras Barabash
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ECTG Ltd
O INVESTMENTS LLC
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Assigned to RSCECAT, USA, INC.reassignmentRSCECAT, USA, INC.ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: BAKHIR, VITOLD M., BARABASH, TARAS, ZADOROZHNY, JURY G.
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Abstract

An apparatus for electrochemical purification of water and for regulation of acid-alkaline properties, Red-Ox characteristics and catalytic activity of water that can be used for obtaining washing and disinfecting solutions. The apparatus includes at least one electrochemical cell which contain vertical coaxial cylindrical and rod electrodes made from material nonsoluble during electrolysis and an ultrafiltration ceramic diaphragm installed between the electrodes to create inter-electrode space in the electrode chambers. Channels for the treated solution supply into and discharge from the electrode chambers. A feeding line is connected to the inlet of the negative electrode chamber and the output of the negative electrode chamber is connected to the inlet of the positive electrode chamber by a special line which has a by-pass for discharging a part of the degasified treated solution from the chamber of the negative electrode. A catalyst chamber can be installed on the special line. The catalyst chamber contains a mixture of particles of carbon and manganese dioxide. A separator with a tangential inlet is used for discharging a part of the degasified processed solution.

Description

CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a Continuation-in-Part of application Ser. No. 08/820,259, filed Mar. 18, 1997, entitled "Apparatus for Electrochemical Treatment of Water and/or Water Solutions", now U.S. Pat. No. 5,871,623; which is a Continuation of application Ser. No. 08/624,720, filed Mar. 28, 1996, entitled "Apparatus for Electrochemical Treatment of Water and/or Water Solutions", now U.S. Pat. No. 5,628,888, issued on May 13, 1997.
This invention relates to the area of chemical technology, and more particularly to apparatus for the electrochemical treatment and purification of water and/or water solutions and for the regulation of acid-alkaline properties, Red-Ox characteristics and catalytic activity of water and can be used for obtaining washing/disinfecting solutions.
BACKGROUND OF THE INVENTION
In the area of applied electrochemistry, different design electrolyzers have been used for water treatment or for obtaining washing and disinfecting solutions.
A device with flat perforated electrodes pressed against the diaphragm is used for water treatment in the anode chamber and cathode chamber separately. See the Author's Certificate USSR No. 882944 (1978). One of the disadvantages of such a device is the poor hydrodynamics. Another disadvantage is that the resulting products from the anode electrochemical reaction and the cathode electrochemical reaction can become mixed together because the diaphragm has a high penetrability. Also such an electrolyzer containing flat electrodes requires excessive manual labor in order to be assembled and repaired.
Another device for the electrolysis of water consists of a cylindrical electrolyzer with coaxial electrodes which are fixed in dielectric bushings and a diaphragm is placed between the electrodes. The diaphragm separates the inter-electrode space in the cathode and anode chambers. See Japanese Published Patent Application No. 1-104387 (1989). Each chamber has a separate inlet in the lower bushing and a separate outlet in the upper bushing of the electrolyzer which are connected to the pressurized water line. The device includes a power supply connected to the electrodes through the switchboard for changing the polarity of electrodes, for descaling of the cathode electrode and for switching the hydraulic lines which provide the solution output from the anode chamber and the cathode chamber without mixing of the resulting solutions. It is possible to obtain electrochemical processed water with biocide characteristics by using this device.
The disadvantage of this device is the high energy consumption required for water treatment, in particular for the treatment of water which is changing its mineralization during the treatment. The broader the range of mineralization change attempted, the more powerful must be the power supply.
The device that is closest by the technical design and achieved result to the present invention is the apparatus for electrochemical treatment of water discloses in U.S. Pat. No. 5,427,667 (Bakhir et al.), which is a prototype from which the present invention evolved. The device disclosed in this application contains at least one electrochemical cell. The cell contains vertical coaxial cylindrical and rod electrodes and a diaphragm, each of which are made from material which is nonsoluble during electrolysis. The electrodes are installed in dielectric bushings. An ultrafiltration ceramic diaphragm, the main ingredient of which is zirconium oxide, is installed in the bushings between the electrodes. The ability to change the geometric dimensions of the cell is limited by the formula.
The cells are fastened in the lower and upper collectors which are made from dielectric material. The collectors have channels for incoming and outgoing solutions. The cells are installed in the collectors in parallel hydraulically and in parallel or in series--parallel electrically.
The electrodes of the cell are connected with the poles of the power supply in such a way that the cylindrical electrode is an anode and the rod electrode is a cathode. Both electrode chambers are connected with the incoming water in a parallel manner and the cell has flow regulators on both lines. The device also has a water-jet pump for dosing a reagent entered from the tank installed on the water supplying line. The device may include a catalytic chamber. The power supply connected to the electrodes through the switchboard. The anode treated solution is a disinfectant and the cathode treated solution is a washing solution. The disadvantages in using this device for water treatment are that it requires relatively high power consumption and a large number of reagents to clean the cells.
The object of the present invention is to provide an improved apparatus for electrochemical treatment of water that reduces power consumption and extends the functional abilities of the earlier devices. This is achieved by varying the parameters of anolyte and catholyte, in particular by increasing the biocide characteristics of anolyte and reducing its corrosion activity.
This object can be achieved when the device for obtaining washing and disinfecting solutions by the electrolysis of sodium chloride water solution contains at least one electrochemical cell. The cell contains vertical coaxial cylindrical and rod electrodes made from material that is nonsoluble during electrolysis, and a coaxial ceramic ultrafiltration diaphragm. The cylindrical and rod electrodes are installed in the dielectric bushings. The ceramic ultrafiltration diaphragm is installed in the bushings between the electrodes. The diaphragm separates the inter-electrode space into two chambers.
Lower and upper bushings have channels for the treated solution that is supplied into and is discharged from the electrode chambers. The device also contains a metering pump for introducing sodium chloride to the treated water. The water line has a flow regulator which is connected to the metering pump. The poles of the power supply are connected to the electrodes. The feeding line is connected to the inlet of the negative electrode chamber. The outlet of the negative electrode chamber is connected to the inlet of the positive electrode chamber by a special line which has an adjustment for discharging part of the degasified processed solution from the chamber of the negative electrode. In addition, a chamber with catalyst can be installed on the special line. The catalytic chamber may contain a mixture of carbon and manganese oxide and has an inlet in the upper part and an outlet in the lower part. The adjustment for discharging part of the degasified processed solution is executed, for instance, as a separator with the tangential inlet containing a valve which permits the discharge of part of the flow and, after degasification, sends it to the end user. The adjustments for supplying and discharging the treated solution are made as collectors which permits the joining of two or more cells.
It is a known method when the treated solution is consequently passed first through the cathode chamber and then through the anode chamber. See, for instance, Inventor's Certificate USSR No. 865829 (1980). The order of water flowing through the electrode chambers is defined by the requirements for the purification rate from the ions of heavy metals. The regulation of the processes, which are ongoing in the electrode chambers, is aimed of changing the pH of the treated solution. These changes are significant in comparison with the initial solution. In particular, the pH of the solution treated in the cathode chamber is changed so that the treated solution produces a high alkaline reaction which exceeds the pH value for the hydrate formation. In order to obtain a neutral pH, after the filtration of the nonsoluble hydroxides, the acidification of the cathode treated water in the anode chamber is required.
With the new device of the present invention, it is essential that the cathode treated solution together with hydrogen flows through the anode chamber. Regulation of the pH is not so important due to the small value pH changes achieved. The main results from the process are the reduction-oxidizing (Red-Ox) reactions taking place on the surfaces of electrodes and in the volume of the solution. Red-Ox reactions permit the producing of washing and disinfecting solutions with the required characteristics.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 shows one of the preferred embodiments of the present invention for the electrochemical synthesis of washing and disinfecting solutions in which the negative chamber outlet is connected with the positive chamber inlet by the special line.
FIG. 2 shows schematically the preferred embodiment of the present invention of FIG. 1.
FIG. 3 shows another preferred embodiment of the present invention for the electrochemical synthesis of washing and disinfecting solutions in which a catalyst chamber is provided on the special line.
FIG. 4 shows schematically the preferred embodiment of the present invention of FIG. 3.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
The present invention is an improvement on the prototype apparatus for electrochemical treatment of water disclosed in U.S. Pat. No. 5,427,667, the disclosure of which is incorporated herein by this reference thereto.
The apparatus of the present invention for obtaining washing and disinfecting solutions is shown in FIGS. 1 and 2 and contains anelectrochemical cell 1. The electrochemical cell is described in connection with the prototype in U.S. Pat. No. 5,427,667. The vertical coaxial electrodes (anode and cathode) of the cell are connected to the poles of the power supply (not shown). The ceramic diaphragm is made from zirconium oxide, aluminum oxide and yttrium oxide, is installed between the electrodes and separates the inter-electrode space in the electrode chambers: theanode chamber 2 and thecathode chamber 3. Thecathode chamber 3 is connected to thefeeding line 4 containing the solution to be treated. This line also contains the runningwater line 5 and thebrine line 6. The runningwater line 5 contains afilter 7 and thebrine line 6 contains afilter 8 to remove impurities. Thebrine line 6 contains thevalve 9. The negativeelectrode chamber outlet 3 is connected to the inlet of thepositive electrode chamber 2 by thespecial line 10. Thespecial line 10 contains anadjustment 11 for degasifying the catholyte. Theadjustment 11 permits the discharge of part of the degasified treated solution from thenegative electrode chamber 3. Theadjustment 11 can be made, for example, as a separator with the tangential inlet containing avalve type device 12 for discharging part of the treated solution and, after degasification, delivering it to the user.
A suitable separator is a static centrifugal separator having a tangential horizontal inlet for the gasified catholyte, an upper vertical outlet for gas and a lower vertical outlet for the degasified catholyte. A flow line connects the exit of the cathode chamber to the inlet of the separator. If the valve of the flow line is closed, the entire flow of catholyte is degasified before the catholyte is removed from the apparatus or before introduction into the catholyte-fed anode chamber. If the valve of the flow line is partially opened, a portion of the solution introduced into the catholyte-fed anode chamber comprises catholyte gasified with hydrogen.
As shown in FIGS. 3 and 4, thespecial line 10 may also have achamber 13 containing the catalyst. Thechamber 13 can contain, for instance, a mixture of particles of carbon and manganese dioxide. The catalyst allows one to control changes in the anolyte properties (reducing its corrosion activity) by regulation of the content of active ingredients in the catholyte.
In another embodiment of the present invention, a plurality or battery of electrochemical cells are joined together and the supply of catholyte is introduced into the anode chamber of each of the cells of the battery. The outlet of the cathode chamber of each cell of the battery can be arranged to be in communication with the inlet of the anode chamber of the same cell so that catholyte introduced into the anode of each cell of the battery is drawn from the cathode of the same cell. Alternatively, the outlet of the cathode chamber of each cell of the battery can be arranged to be in fluid flow communication with the anode chamber of a different cell so that catholyte introduced into the anode chamber of each cell is drawn from the cathode chamber of a different cell in the battery. Further, the outlets of the cathode chambers of a plurality of the cells of the battery can be arranged to be in communication with a common catholyte reservoir or header, and the inlets of the anode chambers of the same or another plurality of cells of the battery are also in communication with the catholyte reservoir or header, so that catholyte introduced into the anode chamber of each of the latter plurality of cells comprises a mixture of the catholyte produced in the former plurality of cells.
The apparatus of the present invention works as follows. Source solution runs inline 4 and contains water filtered 7 from theimpurities line 5 and a solution of an aqueous alkali metal halide, such as sodium chloride, carried inline 6. The water and sodium chloride proportions in the source solution can be adjusted by thevalve 9. The source solution enters into thecathode chamber 3 of theelectrochemical cell 1. The amount of sodium chloride in the water depends upon the application. When the power supply is on, the position of thevalve 12 affects how the process is run.
If thevalve 12 is closed, the entire volume of the catholyte, together with the hydrogen, which was produced during electrolysis, enters into theanode chamber 2 of theelectrochemical cell 1.
Chemical Reactions:
2H.sub.2 O-2e.sup.- →H.sub.2 O.sub.2 +2H.sup.+
2H.sub.2 O-2H.sup.+ -2e.sup.- →H.sub.2 O.sub.2
As a result, the anolyte increases its biocidal activity and decreases its corrosion activity (pH=7.2-7.6).
If thevalve 12 is opened slightly and part of the catholyte is discharged, then the specific electric output for making anolyte is increased. ##EQU1## where: I=current (A)
Qtotal =total flow through the device
Qcatholyte =catholyte output
With reference to FIGS. 3 and 4, adding thecatalyst chamber 13 makes it possible to neutralize a portion of the active ingredients in the catholyte and to increase the efficiency in theanode chamber 2, since part of the current, which was used earlier for the neutralization of active ingredients in the catholyte, assists in changing the characteristics of the anolyte. This allows one to increase the biocidal activity of the anolyte without measurably changing the pH.
The invention is illustrated by the following example, which is not intended to exhaust all of its possibilities.
Example. The cell contains titanium electrodes coated with platinum or platinum-iridium and a ceramic ultrafiltration diaphragm (see U.S. Pat. No. 5,427,667) was used for water treatment. The concentration of sodium chloride in the initial solution was 2 g/l. The power consumption was 1.8 KWHR/l.
Thevalve 12 was closed and the whole solution is run from thecathode chamber 3 into theanode chamber 2 together with the free hydrogen. The biocidal activity of the obtained anolyte was from 16 min. The corrosion activity of the obtained anolyte was 1.0 mm/year.
(Biocidal activity was determined by the time (minutes) required for disinfecting 1 liter of water containing bacteria of E coli group in concentrations of 1.107 after 1 ml of the anolyte, with the concentration of active chlorine 300 ppm added.)
The level of corrosion activity was determined by the velocity of the corrosion of metal samples (St. 3) using the weight method and was recalculated on the standard factor: a millimeter per annum).
Anolyte has the following parameters:
pH=8.5;
ORP=+780 mV comparatively to the chlorine-silver electrode.
When thevalve 12 was opened and part of the catholyte (10% from the whole volume) was discharged, anolyte had the following parameters:
biocidal activity-13 minutes;
corrosion activity-1.9 mm/year;
pH=6.5;
ORP=+860 mV comparatively to the chlorine-silver electrode.
The catholyte (which can be used as a washing agent) was obtained with the following parameters: pH=11.0; ORP=-750 mV.
When using the catalytic carbon-manganese dioxide chamber on the special line, anolyte with the following characteristics was obtained:
______________________________________                                                        with 10% of the                                                     without catholyte                                                                     catholyte                                       Characteristics                                                                         activity    discharged                                      ______________________________________                                    Biocidal activity                                                                       14 min.     12 min.                                         Corrosion activity                                                                      1.8 mm/year 3.1 mm/year                                     pH            8.0         6.0                                             ORP           +800 mV     +920 mV                                         ______________________________________
The above results can be compared to the characteristics of the anolyte and catholyte which can be obtained using the prototype apparatus disclosed in U.S. Pat. No. 5,427,667:
______________________________________                                    Characteristics                                                                         Anolyte     Catholyte                                       ______________________________________                                    Biocidal activity                                                                       12-20 min.                                                  Corrosion activity                                                                      3.5-10 mm/year                                              pH            3.8-6.0     9.5-12.0                                        ORP           +780-+960 mV                                                                          -600--800 mV                                    ______________________________________
In accordance with the data presented herein, the invention allows one to obtain a bactericidal solution (anolyte) with wider functional abilities than in the prototype apparatus disclosed in U.S. Pat. No. 5,427,667. The present invention provides a possibility of fine regulation of the anolyte parameters during the process. The present invention also provides a possibility to increase a bactericidal activity of the anolyte and decrease its corrosion activity at the same time.
While the invention has been illustrated with respect to several specific embodiments thereof, these embodiments should be considered as illustrative rather than limiting. Various modifications and additions may be made and will be apparent to those skilled in the art. Accordingly, the invention should not be limited by the foregoing description, but rather should be defined only by the following claims.

Claims (14)

What is claimed is:
1. An apparatus for producing washing and disinfecting solutions by electrolysis of an aqueous alkali metal halide solution, comprising:
a) an electrochemical cell comprising coaxial cylindrical and rod electrodes and a diaphragm coaxial with and between the internal and external electrodes, the diaphragm dividing the electrochemical cell into a cathode chamber and an anode chamber;
b) an inlet for the cathode chamber in fluid flow communication with a supply of aqueous alkali metal halide solution; and
c) an outlet for the cathode chamber in fluid flow communication with an inlet for feeding catholyte into the anode chamber of an electrochemical cell, whereby alkaline catholyte produced in and exiting the cathode chamber is introduced into the catholyte-fed anode chamber for electrolytic oxidation therein.
2. The apparatus as set forth in claim 1 further including means for removal of a portion of catholyte from the outlet prior to introduction of the catholyte into the inlet of the anode chamber.
3. The apparatus as set forth in claim 2 wherein the means for removal of a portion of the catholyte is provided between the outlet of the cathode chamber and the inlet of the catholyte-fed anode chamber.
4. The apparatus as set forth in claim 3 comprising means for degasifying the catholyte removed from the apparatus.
5. The apparatus as set forth in claim 4 wherein the means for degasifying the catholyte comprises a static centrifugal separator having a tangential horizontal inlet for gasified catholyte, an upper vertical outlet for gas and a lower vertical outlet for degasified catholyte.
6. The apparatus as set forth in claim 5 wherein a flow line connects an exit of the cathode chamber to the inlet of the separator so that the entire flow of catholyte is degasified before removal from the apparatus or before introduction into the catholyte-fed anode chamber.
7. The apparatus as set forth in claim 5 wherein a flow line in communication with an exit of the cathode chamber and the inlet of the catholyte-fed anode chamber bypasses the separator so that at least a portion of the solution introduced into the catholyte-fed anode chamber comprises catholyte gasified with hydrogen.
8. The apparatus as set forth in claim 1 further including a catalyst chamber containing a catalyst for controlling changes in the anolyte properties, the catalyst chamber being provided between the outlet of the cathode chamber and the inlet of the catholyte-fed anode chamber.
9. The apparatus as set forth in claim 8 wherein the catalyst comprises a mixture of particles of carbon and manganese dioxide.
10. The apparatus as set forth in claim 1 wherein the inlet of the anode chamber of the electrochemical cell is in fluid flow communication with the outlet of the cathode chamber of the same cell, so that the catholyte-fed anode chamber comprises the anode chamber of the electrochemical cell comprising the cathode chamber in which alkaline catholyte is produced.
11. The apparatus as set forth in claim 1 comprising a battery of electrochemical cells and comprising means for introducing catholyte into the anode chamber of each of the cells of the battery.
12. The apparatus as set forth in claim 11 wherein the outlet of the cathode chamber of each cell of the battery is in communication with the inlet of the anode chamber of the same cell, whereby catholyte produced in each cathode of the battery is then introduced into the anode of the same cell of the battery.
13. The apparatus as set forth in claim 11 wherein the outlet of the cathode chamber of each cell of the battery is in fluid flow communication with the anode chamber of a different cell, so that catholyte introduced into the anode chamber of each cell is drawn from the cathode chamber of a different cell in the battery.
14. The apparatus as set forth in claim 11 wherein the outlets of the cathode chambers of a plurality of the cells of the battery are in communication with a common catholyte reservoir or header, and the inlets of the anode chambers of the same or another plurality of cells of the battery are also in communication with the catholyte reservoir or header, so that catholyte introduced into the anode chamber of each of the latter plurality of cells comprises a mixture of the catholyte produced in the former plurality of cells.
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Cited By (55)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US20030015419A1 (en)*2001-06-212003-01-23Electro-Chemical Technologies Ltd.Portable device for electrochemical processing of liquids
GB2391018A (en)*2002-07-232004-01-28David Edward CrossElectrochemical cells with coaxial electrodes
US20040131695A1 (en)*1997-10-232004-07-08Radical Waters Ip (Pty) Ltd.Use of an aqueous solution in the treatment of live animals
GB2409464A (en)*2003-12-242005-06-29James DalyProcess and apparatus for the preparation of a liquid biocidal medium
US20050142157A1 (en)*2003-12-302005-06-30Oculus Innovative Sciences, Inc.Oxidative reductive potential water solution and methods of using the same
US20050189216A1 (en)*2004-01-282005-09-01Gennady KrylovMethod and apparatus for producing a disinfecting or therapeutic fluid
US6942767B1 (en)2001-10-122005-09-13T-Graphic, LlcChemical reactor system
US7090753B2 (en)2001-09-142006-08-15Oculus Innovative Sciences, Inc.Electrolytic cell for producing charged anode water suitable for surface cleaning or treatment, and method for producing the same and use of the same
US20060249375A1 (en)*2005-05-062006-11-09Aoun Walid AElectrochemical cell with elastomeric cap
US20060266381A1 (en)*2005-05-272006-11-30Doherty James ECommercial glassware dishwasher and related method
US20070020567A1 (en)*2002-12-232007-01-25Branston David WMethod and device for influencing combution processes of fuels
US20070045125A1 (en)*2005-08-252007-03-01Hartvigsen Joseph JElectrochemical Cell for Production of Synthesis Gas Using Atmospheric Air and Water
US20070196357A1 (en)*2006-01-202007-08-23Oculus Innovative Sciences, Inc.Methods of treating or preventing inflammation and hypersensitivity with oxidative reductive potential water solution
KR100754274B1 (en)2007-03-212007-09-03주식회사 덕영엔지니어링 Electrolyzer for Cyclone Type Electrolysis
US20070272549A1 (en)*2006-05-252007-11-29Davis James EElectrolysis cell assembly
WO2008039727A3 (en)*2006-09-252008-07-10Halliburton Energy Serv IncMethod for wellbore servicing to enhance the mechanical strength of cement using electrochemically activated water
US20080200355A1 (en)*2007-01-122008-08-21Emmons Stuart AAqueous Solution for Managing Microbes in Oil and Gas Production and Method for their Production
US20080251067A1 (en)*2007-03-192008-10-16Robin Duncan KirkpatrickMethod and composition for starch extraction and modification
US20080260922A1 (en)*2007-01-122008-10-23Robin Duncan KirkpatrickMethod for treating raw and processed grains and starches
US20090056200A1 (en)*2007-09-052009-03-05Joshi Ashok VApparatus and Methods for Producing Biodiesel Using an Alkali Ion Donating Catalyst
WO2009115577A1 (en)*2008-03-192009-09-24Aquagroup AgElectrodiaphragmalysis
US20100189805A1 (en)*2007-04-132010-07-29Aquqgroup AgElectrochemically treated water, method and device for the production thereof, and the use thereof as a disinfection agent
US20100283169A1 (en)*2009-05-062010-11-11Emmons Stuart AElectrolytic cell diaphragm/membrane
WO2011073714A1 (en)*2009-12-162011-06-23Cm Ventures Ltd.Multi-chamber electrolytic cell and methods of use
EP2348000A1 (en)*2010-01-202011-07-27Nederlandse Organisatie voor toegepast -natuurwetenschappelijk onderzoek TNOMethod for treating an aqueous fluid
US8062500B2 (en)2001-12-052011-11-22Oculus Innovative Sciences, Inc.Method and apparatus for producing negative and positive oxidative reductive potential (ORP) water
US8323252B2 (en)2005-03-232012-12-04Oculus Innovative Sciences, Inc.Method of treating skin ulcers using oxidative reductive potential water solution
US8562810B2 (en)2011-07-262013-10-22Ecolab Usa Inc.On site generation of alkalinity boost for ware washing applications
US20140014528A1 (en)*2012-07-112014-01-16Ecolab Usa Inc.Electrolytic cell with catholyte recycle
US20140291164A1 (en)*2010-12-302014-10-02Valeri IltsenkoMethod and device for disinfectant production
US8882972B2 (en)2011-07-192014-11-11Ecolab Usa IncSupport of ion exchange membranes
WO2015048537A1 (en)2013-09-272015-04-02R-Hangel, LLCActivated solutions for water treatment
US9005454B2 (en)2006-10-102015-04-14Blue Earth Labs, LlcMethods and compositions for treating water-containing systems
US9222182B2 (en)2013-06-142015-12-29Simple Science LimitedElectrochemical activation device
DE102014010901A1 (en)2014-07-242016-01-28Michael Saefkow ECA reactor for producing an activated hypochlorite-containing disinfectant
US9487870B2 (en)2012-07-112016-11-08Ecolab Usa Inc.Apparatus, method and system for rapid service, removal and replacement of an electrolytic cell
US9498548B2 (en)2005-05-022016-11-22Oculus Innovative Sciences, Inc.Method of using oxidative reductive potential water solution in dental applications
US10342825B2 (en)2009-06-152019-07-09Sonoma Pharmaceuticals, Inc.Solution containing hypochlorous acid and methods of using same
US10349982B2 (en)2011-11-012019-07-16Nuvasive Specialized Orthopedics, Inc.Adjustable magnetic devices and methods of using same
US10478232B2 (en)2009-04-292019-11-19Nuvasive Specialized Orthopedics, Inc.Interspinous process device and method
US10617453B2 (en)2015-10-162020-04-14Nuvasive Specialized Orthopedics, Inc.Adjustable devices for treating arthritis of the knee
US10646262B2 (en)2011-02-142020-05-12Nuvasive Specialized Orthopedics, Inc.System and method for altering rotational alignment of bone sections
US10660675B2 (en)2010-06-302020-05-26Nuvasive Specialized Orthopedics, Inc.External adjustment device for distraction device
US10729470B2 (en)2008-11-102020-08-04Nuvasive Specialized Orthopedics, Inc.External adjustment device for distraction device
US10743794B2 (en)2011-10-042020-08-18Nuvasive Specialized Orthopedics, Inc.Devices and methods for non-invasive implant length sensing
US10751094B2 (en)2013-10-102020-08-25Nuvasive Specialized Orthopedics, Inc.Adjustable spinal implant
US10835290B2 (en)2015-12-102020-11-17Nuvasive Specialized Orthopedics, Inc.External adjustment device for distraction device
US10918425B2 (en)2016-01-282021-02-16Nuvasive Specialized Orthopedics, Inc.System and methods for bone transport
US11191579B2 (en)2012-10-292021-12-07Nuvasive Specialized Orthopedics, Inc.Adjustable devices for treating arthritis of the knee
US11202707B2 (en)2008-03-252021-12-21Nuvasive Specialized Orthopedics, Inc.Adjustable implant system
US11234849B2 (en)2006-10-202022-02-01Nuvasive Specialized Orthopedics, Inc.Adjustable implant and method of use
US11246694B2 (en)2014-04-282022-02-15Nuvasive Specialized Orthopedics, Inc.System for informational magnetic feedback in adjustable implants
US11357549B2 (en)2004-07-022022-06-14Nuvasive Specialized Orthopedics, Inc.Expandable rod system to treat scoliosis and method of using the same
US11439449B2 (en)2014-12-262022-09-13Nuvasive Specialized Orthopedics, Inc.Systems and methods for distraction
US11612416B2 (en)2015-02-192023-03-28Nuvasive Specialized Orthopedics, Inc.Systems and methods for vertebral adjustment

Citations (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3812026A (en)*1971-01-261974-05-21Commissariat Energie AtomiquePressurized electrolyzer including gas product-electrolyte separating means
US5427667A (en)*1992-04-031995-06-27Bakhir; Vitold M.Apparatus for electrochemical treatment of water

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3812026A (en)*1971-01-261974-05-21Commissariat Energie AtomiquePressurized electrolyzer including gas product-electrolyte separating means
US5427667A (en)*1992-04-031995-06-27Bakhir; Vitold M.Apparatus for electrochemical treatment of water

Cited By (90)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US20040131695A1 (en)*1997-10-232004-07-08Radical Waters Ip (Pty) Ltd.Use of an aqueous solution in the treatment of live animals
US7651704B2 (en)1997-10-232010-01-26Radical Waters Ip (Pty) Ltd.Use of an aqueous solution in the treatment of live animals
US20030015419A1 (en)*2001-06-212003-01-23Electro-Chemical Technologies Ltd.Portable device for electrochemical processing of liquids
US6843895B2 (en)2001-06-212005-01-18Electro-Chemical Technologies Ltd.Portable device for electrochemical processing of liquids
US7442288B2 (en)2001-09-142008-10-28Oculus Innovative Sciences, Inc.Electrolytic cell for producing charged anode water suitable for surface cleaning or treatment, and method for producing the same and use of the same
US7090753B2 (en)2001-09-142006-08-15Oculus Innovative Sciences, Inc.Electrolytic cell for producing charged anode water suitable for surface cleaning or treatment, and method for producing the same and use of the same
US6942767B1 (en)2001-10-122005-09-13T-Graphic, LlcChemical reactor system
US8062500B2 (en)2001-12-052011-11-22Oculus Innovative Sciences, Inc.Method and apparatus for producing negative and positive oxidative reductive potential (ORP) water
GB2391018B (en)*2002-07-232005-08-17David Edward CrossElectrochemical cells
US20060124453A1 (en)*2002-07-232006-06-15Cross David EElectrochemical cells
US7422668B2 (en)*2002-07-232008-09-09Puricore International LimitedElectrochemical cells
GB2391018A (en)*2002-07-232004-01-28David Edward CrossElectrochemical cells with coaxial electrodes
US20070020567A1 (en)*2002-12-232007-01-25Branston David WMethod and device for influencing combution processes of fuels
GB2409464A (en)*2003-12-242005-06-29James DalyProcess and apparatus for the preparation of a liquid biocidal medium
US9642876B2 (en)2003-12-302017-05-09Sonoma Pharmaceuticals, Inc.Method of preventing or treating sinusitis with oxidative reductive potential water solution
US20050142157A1 (en)*2003-12-302005-06-30Oculus Innovative Sciences, Inc.Oxidative reductive potential water solution and methods of using the same
US9168318B2 (en)2003-12-302015-10-27Oculus Innovative Sciences, Inc.Oxidative reductive potential water solution and methods of using the same
US10016455B2 (en)2003-12-302018-07-10Sonoma Pharmaceuticals, Inc.Method of preventing or treating influenza with oxidative reductive potential water solution
US20050189216A1 (en)*2004-01-282005-09-01Gennady KrylovMethod and apparatus for producing a disinfecting or therapeutic fluid
US11357549B2 (en)2004-07-022022-06-14Nuvasive Specialized Orthopedics, Inc.Expandable rod system to treat scoliosis and method of using the same
US8840873B2 (en)2005-03-232014-09-23Oculus Innovative Sciences, Inc.Method of treating second and third degree burns using oxidative reductive potential water solution
US8323252B2 (en)2005-03-232012-12-04Oculus Innovative Sciences, Inc.Method of treating skin ulcers using oxidative reductive potential water solution
US9498548B2 (en)2005-05-022016-11-22Oculus Innovative Sciences, Inc.Method of using oxidative reductive potential water solution in dental applications
US20060249375A1 (en)*2005-05-062006-11-09Aoun Walid AElectrochemical cell with elastomeric cap
US20060266381A1 (en)*2005-05-272006-11-30Doherty James ECommercial glassware dishwasher and related method
US9631285B2 (en)2005-08-252017-04-25Ceramatec, Inc.Electrochemical process for the production of synthesis gas using atmospheric air and water
US20070045125A1 (en)*2005-08-252007-03-01Hartvigsen Joseph JElectrochemical Cell for Production of Synthesis Gas Using Atmospheric Air and Water
US8075746B2 (en)*2005-08-252011-12-13Ceramatec, Inc.Electrochemical cell for production of synthesis gas using atmospheric air and water
US9782434B2 (en)2006-01-202017-10-10Sonoma Pharmaceuticals, Inc.Methods of treating or preventing inflammation and hypersensitivity with oxidative reductive potential water solution
US20070196357A1 (en)*2006-01-202007-08-23Oculus Innovative Sciences, Inc.Methods of treating or preventing inflammation and hypersensitivity with oxidative reductive potential water solution
US9072726B2 (en)2006-01-202015-07-07Oculus Innovative Sciences, Inc.Methods of treating or preventing inflammation and hypersensitivity with oxidative reductive potential water solution
US8147444B2 (en)2006-01-202012-04-03Oculus Innovative Sciences, Inc.Methods of treating or preventing peritonitis with oxidative reductive potential water solution
US8834445B2 (en)2006-01-202014-09-16Oculus Innovative Sciences, Inc.Methods of treating or preventing peritonitis with oxidative reductive potential water solution
US7374645B2 (en)2006-05-252008-05-20Clenox, L.L.C.Electrolysis cell assembly
US20070272549A1 (en)*2006-05-252007-11-29Davis James EElectrolysis cell assembly
US20120204764A1 (en)*2006-09-252012-08-16Halliburton Energy Services, Inc.Method for Wellbore Servicing to Enhance the Mechanical Strength of Cement Using Electrochemically Activated Water
US20090308612A1 (en)*2006-09-252009-12-17Halliburton Energy Services, Inc.Method for wellbore servicing to enhance the mechanical strength of cement using electrochemically activated water
WO2008039727A3 (en)*2006-09-252008-07-10Halliburton Energy Serv IncMethod for wellbore servicing to enhance the mechanical strength of cement using electrochemically activated water
US8267175B2 (en)2006-09-252012-09-18Halliburton Energy Services, Inc.Method for wellbore servicing to enhance the mechanical strength of cement using electrochemically activated water
US10370273B2 (en)2006-10-102019-08-06Blue Earth Labs, LlcMethods and compositions for treating water-containing systems
US9005454B2 (en)2006-10-102015-04-14Blue Earth Labs, LlcMethods and compositions for treating water-containing systems
US11234849B2 (en)2006-10-202022-02-01Nuvasive Specialized Orthopedics, Inc.Adjustable implant and method of use
US11672684B2 (en)2006-10-202023-06-13Nuvasive Specialized Orthopedics, Inc.Adjustable implant and method of use
US20080260922A1 (en)*2007-01-122008-10-23Robin Duncan KirkpatrickMethod for treating raw and processed grains and starches
US20110030959A1 (en)*2007-01-122011-02-10Emmons Stuart AAqueous Solution For Managing Microbes In Oil And Gas Production And Method For Their Production
US20080200355A1 (en)*2007-01-122008-08-21Emmons Stuart AAqueous Solution for Managing Microbes in Oil and Gas Production and Method for their Production
US8147889B2 (en)2007-01-122012-04-03Giant Trading Inc.Method for treating raw and processed grains and starches
US8123865B2 (en)2007-03-192012-02-28Gb International Ltd.Method and composition for starch extraction and modification
US20080251067A1 (en)*2007-03-192008-10-16Robin Duncan KirkpatrickMethod and composition for starch extraction and modification
KR100754274B1 (en)2007-03-212007-09-03주식회사 덕영엔지니어링 Electrolyzer for Cyclone Type Electrolysis
US20100189805A1 (en)*2007-04-132010-07-29Aquqgroup AgElectrochemically treated water, method and device for the production thereof, and the use thereof as a disinfection agent
US20090056200A1 (en)*2007-09-052009-03-05Joshi Ashok VApparatus and Methods for Producing Biodiesel Using an Alkali Ion Donating Catalyst
WO2009115577A1 (en)*2008-03-192009-09-24Aquagroup AgElectrodiaphragmalysis
US20110176991A1 (en)*2008-03-192011-07-21Sybaris GmbHElectrodiaphragmalysis
US11202707B2 (en)2008-03-252021-12-21Nuvasive Specialized Orthopedics, Inc.Adjustable implant system
US10729470B2 (en)2008-11-102020-08-04Nuvasive Specialized Orthopedics, Inc.External adjustment device for distraction device
US10478232B2 (en)2009-04-292019-11-19Nuvasive Specialized Orthopedics, Inc.Interspinous process device and method
US20100283169A1 (en)*2009-05-062010-11-11Emmons Stuart AElectrolytic cell diaphragm/membrane
US10342825B2 (en)2009-06-152019-07-09Sonoma Pharmaceuticals, Inc.Solution containing hypochlorous acid and methods of using same
WO2011073714A1 (en)*2009-12-162011-06-23Cm Ventures Ltd.Multi-chamber electrolytic cell and methods of use
EP2348000A1 (en)*2010-01-202011-07-27Nederlandse Organisatie voor toegepast -natuurwetenschappelijk onderzoek TNOMethod for treating an aqueous fluid
WO2011090376A1 (en)*2010-01-202011-07-28Nederlandse Organisatie Voor Toegepast-Natuurwetenschappelijk Onderzoek TnoMethod for treating an aqueous fluid
US10660675B2 (en)2010-06-302020-05-26Nuvasive Specialized Orthopedics, Inc.External adjustment device for distraction device
US20140291164A1 (en)*2010-12-302014-10-02Valeri IltsenkoMethod and device for disinfectant production
US9169570B2 (en)*2010-12-302015-10-27Valeri IltsenkoMethod and device for disinfectant production
US10646262B2 (en)2011-02-142020-05-12Nuvasive Specialized Orthopedics, Inc.System and method for altering rotational alignment of bone sections
US8882972B2 (en)2011-07-192014-11-11Ecolab Usa IncSupport of ion exchange membranes
US8562810B2 (en)2011-07-262013-10-22Ecolab Usa Inc.On site generation of alkalinity boost for ware washing applications
US9045835B2 (en)2011-07-262015-06-02Ecolab Usa Inc.On site generation of alkalinity boost for ware washing applications
US10743794B2 (en)2011-10-042020-08-18Nuvasive Specialized Orthopedics, Inc.Devices and methods for non-invasive implant length sensing
US10349982B2 (en)2011-11-012019-07-16Nuvasive Specialized Orthopedics, Inc.Adjustable magnetic devices and methods of using same
US11123107B2 (en)2011-11-012021-09-21Nuvasive Specialized Orthopedics, Inc.Adjustable magnetic devices and methods of using same
EP2872677A4 (en)*2012-07-112016-03-09Ecolab Usa IncElectrolytic cell with catholyte recycle
US9487870B2 (en)2012-07-112016-11-08Ecolab Usa Inc.Apparatus, method and system for rapid service, removal and replacement of an electrolytic cell
US20150053569A1 (en)*2012-07-112015-02-26Ecolab Usa Inc.Electrolytic cell with catholyte recycle
US20140014528A1 (en)*2012-07-112014-01-16Ecolab Usa Inc.Electrolytic cell with catholyte recycle
WO2014011736A1 (en)2012-07-112014-01-16Ecolab Usa Inc.Electrolytic cell with catholyte recycle
US11213330B2 (en)2012-10-292022-01-04Nuvasive Specialized Orthopedics, Inc.Adjustable devices for treating arthritis of the knee
US11191579B2 (en)2012-10-292021-12-07Nuvasive Specialized Orthopedics, Inc.Adjustable devices for treating arthritis of the knee
US9222182B2 (en)2013-06-142015-12-29Simple Science LimitedElectrochemical activation device
WO2015048537A1 (en)2013-09-272015-04-02R-Hangel, LLCActivated solutions for water treatment
US10751094B2 (en)2013-10-102020-08-25Nuvasive Specialized Orthopedics, Inc.Adjustable spinal implant
US11246694B2 (en)2014-04-282022-02-15Nuvasive Specialized Orthopedics, Inc.System for informational magnetic feedback in adjustable implants
DE102014010901A1 (en)2014-07-242016-01-28Michael Saefkow ECA reactor for producing an activated hypochlorite-containing disinfectant
US11439449B2 (en)2014-12-262022-09-13Nuvasive Specialized Orthopedics, Inc.Systems and methods for distraction
US11612416B2 (en)2015-02-192023-03-28Nuvasive Specialized Orthopedics, Inc.Systems and methods for vertebral adjustment
US12076051B2 (en)2015-02-192024-09-03Nuvasive Specialized Orthopedics, Inc.Systems and methods for vertebral adjustment
US10617453B2 (en)2015-10-162020-04-14Nuvasive Specialized Orthopedics, Inc.Adjustable devices for treating arthritis of the knee
US10835290B2 (en)2015-12-102020-11-17Nuvasive Specialized Orthopedics, Inc.External adjustment device for distraction device
US10918425B2 (en)2016-01-282021-02-16Nuvasive Specialized Orthopedics, Inc.System and methods for bone transport

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